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A stochastic model of hippocampal synaptic plasticity with geometrical readout of enzyme dynamics

Discovering the rules of synaptic plasticity is an important step for understanding brain learning. Existing plasticity models are either (1) top-down and interpretable, but not flexible enough to account for experimental data, or (2) bottom-up and biologically realistic, but too intricate to interp...

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Autores principales: Rodrigues, Yuri Elias, Tigaret, Cezar M, Marie, Hélène, O'Donnell, Cian, Veltz, Romain
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10435238/
https://www.ncbi.nlm.nih.gov/pubmed/37589251
http://dx.doi.org/10.7554/eLife.80152
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author Rodrigues, Yuri Elias
Tigaret, Cezar M
Marie, Hélène
O'Donnell, Cian
Veltz, Romain
author_facet Rodrigues, Yuri Elias
Tigaret, Cezar M
Marie, Hélène
O'Donnell, Cian
Veltz, Romain
author_sort Rodrigues, Yuri Elias
collection PubMed
description Discovering the rules of synaptic plasticity is an important step for understanding brain learning. Existing plasticity models are either (1) top-down and interpretable, but not flexible enough to account for experimental data, or (2) bottom-up and biologically realistic, but too intricate to interpret and hard to fit to data. To avoid the shortcomings of these approaches, we present a new plasticity rule based on a geometrical readout mechanism that flexibly maps synaptic enzyme dynamics to predict plasticity outcomes. We apply this readout to a multi-timescale model of hippocampal synaptic plasticity induction that includes electrical dynamics, calcium, CaMKII and calcineurin, and accurate representation of intrinsic noise sources. Using a single set of model parameters, we demonstrate the robustness of this plasticity rule by reproducing nine published ex vivo experiments covering various spike-timing and frequency-dependent plasticity induction protocols, animal ages, and experimental conditions. Our model also predicts that in vivo-like spike timing irregularity strongly shapes plasticity outcome. This geometrical readout modelling approach can be readily applied to other excitatory or inhibitory synapses to discover their synaptic plasticity rules.
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spelling pubmed-104352382023-08-18 A stochastic model of hippocampal synaptic plasticity with geometrical readout of enzyme dynamics Rodrigues, Yuri Elias Tigaret, Cezar M Marie, Hélène O'Donnell, Cian Veltz, Romain eLife Neuroscience Discovering the rules of synaptic plasticity is an important step for understanding brain learning. Existing plasticity models are either (1) top-down and interpretable, but not flexible enough to account for experimental data, or (2) bottom-up and biologically realistic, but too intricate to interpret and hard to fit to data. To avoid the shortcomings of these approaches, we present a new plasticity rule based on a geometrical readout mechanism that flexibly maps synaptic enzyme dynamics to predict plasticity outcomes. We apply this readout to a multi-timescale model of hippocampal synaptic plasticity induction that includes electrical dynamics, calcium, CaMKII and calcineurin, and accurate representation of intrinsic noise sources. Using a single set of model parameters, we demonstrate the robustness of this plasticity rule by reproducing nine published ex vivo experiments covering various spike-timing and frequency-dependent plasticity induction protocols, animal ages, and experimental conditions. Our model also predicts that in vivo-like spike timing irregularity strongly shapes plasticity outcome. This geometrical readout modelling approach can be readily applied to other excitatory or inhibitory synapses to discover their synaptic plasticity rules. eLife Sciences Publications, Ltd 2023-08-17 /pmc/articles/PMC10435238/ /pubmed/37589251 http://dx.doi.org/10.7554/eLife.80152 Text en © 2023, Rodrigues et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Neuroscience
Rodrigues, Yuri Elias
Tigaret, Cezar M
Marie, Hélène
O'Donnell, Cian
Veltz, Romain
A stochastic model of hippocampal synaptic plasticity with geometrical readout of enzyme dynamics
title A stochastic model of hippocampal synaptic plasticity with geometrical readout of enzyme dynamics
title_full A stochastic model of hippocampal synaptic plasticity with geometrical readout of enzyme dynamics
title_fullStr A stochastic model of hippocampal synaptic plasticity with geometrical readout of enzyme dynamics
title_full_unstemmed A stochastic model of hippocampal synaptic plasticity with geometrical readout of enzyme dynamics
title_short A stochastic model of hippocampal synaptic plasticity with geometrical readout of enzyme dynamics
title_sort stochastic model of hippocampal synaptic plasticity with geometrical readout of enzyme dynamics
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10435238/
https://www.ncbi.nlm.nih.gov/pubmed/37589251
http://dx.doi.org/10.7554/eLife.80152
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